Na/Ca exchange is the dominant calcium (Ca) efflux mechanism in cardiac myocytes. Although our knowledge of exchanger function (NCX1 in the heart) was originally established using biochemical and electrophysiological tools such as cardiac sarcolemmal vesicles and the giant patch technique [1-4], many advances in our understanding of the physiological/pathophysiological roles of NCX1 in the heart have been obtained using a suite of genetically modified mice. Early mouse studies focused on modification of expression levels of NCX1 in the ventricles, with transgenic overexpressors, global NCX1 knockout (KO) mice (which were embryonic lethal if homozygous), and finally ventricular-specific NCX1 KO [5-12]. We found, to our surprise, that ventricular cardiomyocytes lacking NCX1 can survive and function by engaging a clever set of adaptations to minimize Ca entry, while maintaining contractile function through an increase in excitation-contraction (EC) coupling gain [5,6,13]. Having studied ventricular NCX1 ablation in detail, we more recently focused on elucidating the role of NCX1 in the atria through altering NCX1 expression. Using a novel atrial-specific NCX1 KO mouse, we found unexpected changes in atrial cell morphology and calcium handling, together with dramatic alterations in the function of sinoatrial node (SAN) pacemaker activity. In this review, we will discuss these findings and their implications for cardiac disease.

译文

Na/Ca交换是心肌细胞中主要的钙 (Ca) 流出机制。尽管我们对交换器功能 (心脏NCX1) 的了解最初是使用生化和电生理工具 (例如心脏肌膜囊泡和巨型贴片技术) 建立的 [1-4],使用一组转基因小鼠,我们对NCX1在心脏中的生理/病理生理作用的理解取得了许多进展。早期的小鼠研究集中在脑室中NCX1的表达水平的修饰,转基因过表达,全球NCX1基因敲除 (KO) 小鼠 (如果纯合子是胚胎致死性的),最后是心室特异性NCX1 KO [5-12]。令我们惊讶的是,我们发现缺乏NCX1的心室心肌细胞可以通过参与一组巧妙的适应来最小化Ca的进入而存活和发挥功能,同时通过增加兴奋-收缩 (EC) 耦合增益来维持收缩功能 [5,6,13]。在详细研究了心室NCX1消融之后,我们最近着重于通过改变NCX1表达来阐明NCX1在心房中的作用。使用新型的心房特异性NCX1 KO小鼠,我们发现心房细胞形态和钙处理的意外变化,以及窦房结 (SAN) 起搏器活动功能的显着变化。在这篇综述中,我们将讨论这些发现及其对心脏病的影响。

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